38

我想在 mongodb 中为每个集合使用多个模式,如何使用它....?
当我尝试运行它时,它给了我这个错误:

错误:

allUsersOverwriteModelError:编译后 无法覆盖模型。OverwriteModelError:编译后
无法覆盖模型。checkInOut


这是我的 schema.js

   var mongoose = require('mongoose');

      var Schema = mongoose.Schema
          , ObjectId = Schema.ObjectId;

   var checkInInfoSchema= new Schema({
       name:String,
       loginSerialId:Number
   });


   var loginUserSchema = new Schema({
          sn : { type: Number, unique:true }
          ,uname: {type:String, unique:true}
          ,pass:String
      });

   var registerUserSchema = new Schema({
       sn : { type: Number, unique:true }
       , name: String   //his/her name
       ,pass:String,
       companyKey:{type:String},
       uname:{type:String,unique:true}
   });



   var checkInOutSchema = new Schema({
       uname: String
       ,companyKey:String
       ,task:String
       ,inTime:String
       ,outTime:String
       ,date:{type:String}
       ,serialId:{type:Number,unique:true}
       ,online:Boolean
   });

   //Different schema for same collection "allUsers"        
   var allUser=mongoose.model('allUsers',loginUserSchema);        
   var registerUser=mongoose.model('allUsers',registerUserSchema);

    //Different schema for same collection "checkInOut"
   var checkInOut=mongoose.model('checkInOut',checkInOutSchema);
   var checkInInfo=mongoose.model('checkInOut',checkInInfoSchema);

   module.exports={

       allUser:allUser, 
       registerUser:registerUser,

       checkInOut:checkInOut,
       checkInInfo:checkInInfo
   };
4

3 回答 3

64

在猫鼬中,您可以执行以下操作:

var users = mongoose.model('User', loginUserSchema, 'users');
var registerUser = mongoose.model('Registered', registerUserSchema, 'users');

这两个模式将保存在“用户”集合中。

有关更多信息,您可以参考文档: http: //mongoosejs.com/docs/api.html#index_Mongoose-model或者您可以查看以下要点,它可能会有所帮助。

于 2013-01-22T08:10:54.297 回答
15

我尝试了选择的答案,但是在查询特定模型对象时,它会检索两种模式的数据。所以我认为使用鉴别器会产生更好的解决方案:

const coordinateSchema = new Schema({
    lat: String,
    longt: String,
    name: String
}, {collection: 'WeatherCollection'});

const windSchema = new Schema({
   windGust: String,
   windDirection: String,
   windSpeed: String
}, {collection: 'WeatherCollection'});

//Then define discriminator field for schemas:
const baseOptions = {
    discriminatorKey: '__type',
    collection: 'WeatherCollection'
};

//Define base model, then define other model objects based on this model:
const Base = mongoose.model('Base', new Schema({}, baseOptions));
const CoordinateModel = Base.discriminator('CoordinateModel', coordinateSchema);
const WindModel = Base.discriminator('WindModel', windSchema);

//Query normally and you get result of specific schema you are querying:
mongoose.model('CoordinateModel').find({}).then((a)=>console.log(a));

示例输出:

{ __type: 'CoordinateModel', // discriminator field
    _id: 5adddf0367742840b00990f8,
    lat: '40',
    longt: '20',
    name: 'coordsOfHome',
    __v: 0 },
于 2018-04-23T13:53:18.293 回答
0

当没有传递集合参数时,Mongoose 使用模型名称。如果您不喜欢这种行为,请传递集合名称,使用 mongoose.pluralize(),或设置您的模式集合名称选项。

const schema = new Schema({ name: String }, { collection: 'actor' });

// or

schema.set('collection', 'actor');

// or

const collectionName = 'actor'
const M = mongoose.model('Actor', schema, collectionName)
于 2021-09-21T15:13:12.650 回答